Vertebral compression syndrome in the Atlantic bonito, Sarda sarda (Bloch, 1793) from the Southwest Black Sea coasts of Türkiye

Authors

  • İsmail Reis Muğla Sıtkı Koçman University
  • Firdes S. Karakulak Istanbul University
  • Laith Jawad School of Environmental and Animal Sciences, Unitec Institute of Technology

DOI:

https://doi.org/10.26881/oahs-2025.1.32

Keywords:

deformities, vertebral column, condition factor, radiography, malnutrition

Abstract

This study documents the first recorded case of vertebral compression syndrome (VCS) in an Atlantic bonito (Sarda sarda) from the southwestern Black Sea. The affected specimen exhibited distinct morphometric deviations, including a shortened vertebral column and an increased body depth, compared to a normal conspecific. Radiographic analysis revealed mild compression initiating at the 13th vertebra, which progressed to severe compression affecting vertebrae 21–40. Within this region, vertebrae showed a marked reduction in width and an increase in height, accompanied by localized dislocations and abnormal bulging along the spinal column. The deformity is consistent with a response to altered mechanical load, which likely disrupted bone growth zones and prompted the replacement of intervertebral tissue with cartilage. This study underscores the utility of high-resolution digital radiography as a nondestructive tool for detailed biological investigation. The exact etiology of the mechanical load, whether from an acute pressure event or chronic overexertion, remains unknown and warrants future investigation.

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References

Baeverfjord, G., Åsgård, T., Gjerde, B., Holmefjord, I., & Storset, A. (1996). Ryggdeformitet hos laks skuldast ikkje innavl eller genfeil. Nor Fiskeoppdrett, 10(1), 34–35.

Baeverfjord, Åsgård, & Shearer. (1998). Development and detection of phosphorus deficiency in Atlantic salmon, Salmo salar L., parr and post‐smolts. Aquaculture Nutrition, 4(1), 1–11. https://doi.org/10.1046/j.1365-2095.1998.00095.x.

Bat, L., Öztekin, A., Şahin, F., Arıcı, E., & Özsandıkçı, U. (2018). An overview of the Black Sea pollution in Turkey. Mediterranean Fisheries and Aquaculture Research, 1(2), 66–86.

Berg, A., Rødseth, O. M., Tangerås, A., & Hansen, T. (2006). Time of vaccination influences development of adhesions, growth and spinal deformities in Atlantic salmon Salmo salar. Diseases of Aquatic Organisms, 69(2–3), 239–248. https://doi.org/10.3354/dao069239

Buckland, F. T. (1863). Fish hatching (p. 268). Tinsley Brothers. https://doi.org/10.5962/bhl.title.21009

Fjelldal, P. G., Hansen, T. J., & Berg, A. E. (2007). A radiological study on the development of vertebral deformities in cultured Atlantic salmon (Salmo salar L.). Aquaculture, 273(4), 721–728. https://doi.org/10.1016/j.aquaculture.2007.07.009

Fjelldal, P. G., Hansen, T., Breck, O., Ørnsrud, R., Lock, E. J., Waagbø, R., Wargelius, A., & Eckhard Witten, P. (2012). Vertebral deformities in farmed Atlantic salmon (Salmo salar L.) – Etiology and pathology. Journal of Applied Ichthyology, 28(3), 433–440. https://doi.org/10.1111/j.1439-0426.2012.01980.x.

Fjelldal, P. G., Jawad, L. A., Bengtson, K. E., Ottera, H., & Thorsen, A. (2015). Kongetorsken: Skapt sann eller blitt sann? Fisken og Havet (Havforskningsrapporten 2015), 1(1), 79–80.

Gavaia, P. J., Dinis, M. T., & Cancela, M. L. (2002). Osteological development and abnormalities of the vertebral column and caudal skeleton in larval and juvenile stages of hatchery reared Senegal sole (Solea senegalensis). Aquaculture, 211(1–4), 305–323. https://doi.org/10.1016/S0044-8486(02)00167-9.

Hall, B. K. (2005). Bones and cartilage: Developmental skeletal biology (p. 867). Elsevier. https://doi.org/10.1016/C2013-0-00143-0.

Harder, W. (1975). In E. Schweizerbart’sche Verlagsbuchhandlung (Ed.), Anatomy of fishes (p. 612).

Heron, F., Bucke, D., Chubb, J. C., & Wallace, I. D. (1988). Reappraisal of the James Johnstone collection of examples of diseased fish materials. ICES CM 1988/E, 9.

Hickey, C. R. Jr. (1972). Common abnormalities in fishes, their causes and effects. New York Ocean Science Laboratory Technical Report, 0013 (p. 20). New York Ocean Science Laboratory.

Hunter, C. J., Matyas, J. R., & Duncan, N. A. (2003). The three-dimensional architecture of the notochordal nucleus pulposus: Novel observations on cell structures in the canine intervertebral disc. Journal of Anatomy, 202(3), 279–291. https://doi.org/10.1046/j.1469-7580.2003.00162.x.

Jawad, L. A., & Akyol, O. (2023). Skeletal abnormalities in a Sphyraena sphyraena (Linnaeus, 1758) and a Trachinus radiatus Cuvier, 1829 collected from the North-Eastern Aegean Sea, Izmir, Turkey. Annales: Series Historia Naturalis, 33(1), 75–88. https://doi.org/10.19233/ASHN.2023.12.

Jawad, L. A., Akyol, O., & Aydin, İ. (2018). Severe case of Lordosis-Kyphosis-Ankylosis in Mullus barbatus Linnaeus, 1758 (Teleostei: Mullidae) collected from the Northern Aegean Sea, Turkey. International Journal of Marine Science, 8(12), 101–105. https://doi.org/10.5376/ijms.2018.08.0012.

Jawad, L. A., & Ibrahim, M. (2018). Saddleback deformities in fish species collected from the Arabian Gulf coast of Jubail city, Saudi Arabia. Journal of Ichthyology, 58(3), 401–409. https://doi.org/10.1134/S0032945218030049.

Jawad, L., Şirin, M., Petrtýl, M., Öktener, A., Çelik, M., & Qasim, A. (2022). Skeletal abnormalities in four fish species collected from the Sea of Marmara, Turkey. Annales: Series Historia Naturalis, 32(1), 119–134. https://doi.org/10.19233/ASHN.2022.14

Kihara, M., Ogata, S., Kawano, N., Kubota, I., & Yamaguchi, R. (2002). Lordosis induction in juvenile red sea bream, Pagrus major, by high swimming activity. Aquaculture, 212(1–4), 149–158. https://doi.org/10.1016/S0044-8486(01)00871-7.

Klumpp, D. W., Humphrey, C., Huasheng, H., & Tao, F. (2002). Toxic contaminants and their biological effects in coastal waters of Xiamen, China. II. Biomarkers and embryo malformation rates as indicators of pollution stress in fish. Marine Pollution Bulletin, 44(8), 761–769. https://doi.org/10.1016/S0025-326X(02)00054-1.

Kvellestad, A., Høie, S., Thorud, K., Tørud, B., & Lyngøy, A. (2000). Platyspondyly and shortness of vertebral column in farmed Atlantic salmon Salmo salar in Norway—Description and interpretation of pathologic changes. Diseases of Aquatic Organisms, 39(1), 97–108. https://doi.org/10.3354/dao039097.

Le Cren, E. D. (1951). The length-weight relationship and seasonal cycle in gonad weight and condition in the perch (Perca fluviatilis). Journal of Animal Ecology, 20(1), 201–219. https://doi.org/10.2307/1540.

Lemly, A. D. (1993). Teratogenic effects of selenium in natural populations of freshwater fish. Ecotoxicology and Environmental Safety, 26(1), 181–204. https://doi.org/10.1006/eesa.1993.1049.

Lotz, J. C., Hsieh, A. H., Walsh, A. L., Palmer, E. I., & Chin, J. R. (2002). Mechanobiology of the intervertebral disc. Biochemical Society Transaction, 30(6), 853–858. https://doi.org/10.1042/bst0300853.

Madsen, L., Arnbjerg, J., & Dalsgaard, I. (2000). Spinal deformities in triploid all-female rainbow trout (Oncorhynchus mykiss). Bulletin of the European Association of Fish Pathologists, 20(5), 206–208.

Madsen, L., Arnbjerg, J., & Dalsgaard, I. (2001). Radiological examination of the spinal column in farmed rainbow trout Oncorhynchus mykiss (Walbaum): Experiments with Flavobacterium psychrophilum and oxytetracycline. Aquaculture Research, 32(3), 235–241. https://doi.org/10.1046/j.1365-2109.2001.00552.x.

Matsuoka, M. (2003). Comparison of meristic variations and bone abnormalities between wild and laboratory-reared red sea bream. Japan Agricultural Research Quarterly: JARQ, 37(1), 21–30. https://doi.org/10.6090/jarq.37.21.

Nacar, S., Şan, M., Kankal, M., & Okkan, U. (2024). Trends and amount changes of temperature and precipitation under future projections in high–low groups and intra-period for the Eastern Black Sea, the wettest basin in Türkiye. Natural Hazards, 120(11), 9833–9866. https://doi.org/10.1007/s11069-024-06588-z.

Näslund, J., & Jawad, L. A. (2022). Pugheadedness in fishes. Reviews in Fisheries Science and Aquaculture, 30(3), 306–329. https://doi.org/10.1080/23308249.2021.1957772.

Oegema, T. R. (2002). The role of disc cell heterogeneity in determining disc biochemistry: A speculation. Biochemical Society Transaction, 30(6), 839–844. https://doi.org/10.1042/bst0300839.

Ortega, A., Reglero, P., de la Gándara, F., Mourente, G., & Blanco, E. (2024). Effects of temperature on embryonic development of Atlantic bluefin tuna (Thunnus thynnus, L 1758) and Atlantic bonito (Sarda, Bloch 1793). Fisheries Research, 277, 107066. https://doi.org/10.1016/j.fishres.2024.107066.

Partridge, E. A., & Flake, A. W. (2012). Maternal–fetal surgery for structural malformations. Best Practice & Research Clinical Obstetrics & Gynaecology, 26(5), 669–682.

Paperna, I. (1978). Swimbladder and skeletal deformations in hatchery bred Spams aurata. Journal of Fish Biology, 12(2), 109–114. https://doi.org/10.1111/j.1095-8649.1978.tb04157.x.

Scott, D. (2001). Chemical pollution as a factor affecting the sea survival of Atlantic salmon, Salmo salar L. Fisheries Management and Ecology, 8(6), 487–499. https://doi.org/10.1046/j.1365-2400.2001.00277.x.

Sfakianakis, D. G., Renieri, E., Kentouri, M., & Tsatsakis, A. M. (2015). Effect of heavy metals on fish larvae deformities: A review. Environmental Research, 137(2), 246–255. https://doi.org/10.1016/j.envres.2014.12.014.

Simon, T. P., & Burskey, J. L. (2016). Deformity, erosion, lesion, and tumour occurrence, fluctuating asymmetry, and population parameters for bluntnose minnow (Pimephales notatus) as indicators of recovering water quality in a Great Lakes area of concern, USA. Archives of Environmental Contamination and Toxicology, 70(2), 181–191. https://doi.org/10.1007/s00244-015-0254-4.

Smits, P., & Lefebvre, V. (2003). Sox5 and Sox6 are required for notochord extracellular matrix sheath formation, notochord cell survival and development of the nucleus pulposus of intervertebral discs. Development, 30(6), 1135–1148. https://doi.org/10.1242/dev.00331.

Vågsholm, I., & Djupvik, H. O. (1998). Risk factors for spinal deformities in Atlantic salmon, Salmo salar L. Journal of Fish Diseases, 21(1), 47–53. https://doi.org/10.1046/j.1365-2761.1998.00069.x.

Wargelius, A., Fjelldal, P. G., & Hansen, T. (2005). Heat shock during early somitogenesis induces caudal vertebral column defects in Atlantic salmon (Salmo salar). Developmental Genetics and Evolution, 215(7), 350–357. https://doi.org/10.1007/s00427-005-0482-0.

Witten, P. E., Obach, A., Huysseune, A., & Baeverfjord, G. (2006). Vertebrae fusion in Atlantic salmon (Salmo salar): Development, aggravation and pathways of containment. Aquaculture, 258(1–4), 164–172. https://doi.org/10.1016/j.aquaculture.2006.05.005.

Woo, P. T., Leatherland, J. F., & Bruno, D. W. (Eds), (2006). Fish diseases and disorders (Vol. 3, p. 403). Cabi, Digital Library.

Yılmaz, Ö., Cerim, H., Sercan, Y., & Reis, İ. (2024). A review of fish anomalies in Türkiye’s waters. Aquatic Sciences and Engineering, 39(4), 261–271. https://doi.org/10.26650/ASE20241467944.

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Published

2025-12-31

How to Cite

Reis, İsmail, Karakulak, F. S., & Jawad, L. (2025). Vertebral compression syndrome in the Atlantic bonito, Sarda sarda (Bloch, 1793) from the Southwest Black Sea coasts of Türkiye. Oceanological and Hydrobiological Studies, 54(4), 392–400. https://doi.org/10.26881/oahs-2025.1.32

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Short communication